TRANSFORMER ANOMALY DETECTION WITH FREQUENCY RESPONSE ANALYSIS
20210109146 ยท 2021-04-15
Inventors
Cpc classification
International classification
Abstract
A method is provided for detecting an anomalous frequency response analysis (FRA) test of a transformer. The method uses frequency response analysis to measure voltage amplitudes and frequencies in one winding of the transformer which result from an AC voltage applied to another winding of the transformer. Two statistical distributions are generated from the measured data and the statistical distributions are combined such that one distribution defines one axis, the other distribution defines another axis, and the probabilities of the distributions defines another axis.
Claims
1. A method of identification of abnormal winding response when testing a transformer using frequency response analysis (FRA), comprising: applying a first AC voltage to a first winding and varying a frequency of the first AC voltage in one or more frequency response tests; measuring an amplitude and a frequency of a second AC voltage of a second winding in each of the one or more frequency response tests, the second AC voltage being produced in response to the first AC voltage; generating a first statistical distribution based on the amplitude or frequency of the second AC voltage; generating a second statistical distribution based on the amplitude or frequency of the second AC voltage; wherein the first and second statistical distributions are based on different amplitude or frequency data for a common range of frequencies from a same frequency response test or different frequency response tests; combining the first and second statistical distributions together with the first statistical distribution defining a first axis, the second statistical distribution defining a second axis, and probabilities of the first and second statistical distributions defining a third axis.
2. The method according to claim 1, wherein the first statistical distribution is based on the frequency of the second AC voltage and the second statistical distribution is based on the amplitude of the second AC voltage of the same frequency response test.
3. The method according to claim 1, wherein the first statistical distribution is based on the amplitude of the second AC voltage and the second statistical distribution is based on the amplitude of the second AC voltage of the different frequency response tests.
4. The method according to claim 1, wherein the amplitude of the second AC voltage is expressed as a ratio of the first and second AC voltages.
5. The method according to claim 2, wherein the amplitude of the second AC voltage is expressed as a decibel (dB) determined by 20*log(the second AC voltage/the first AC voltage).
6. The method according to claim 1, wherein the first statistical distribution is a Gaussian distribution defined by a mean and a standard deviation.
7. The method according to claim 1, wherein the second statistical distribution is a Gaussian distribution defined by a mean and a standard deviation.
8. The method according to claim 1, further comprising overlaying the different amplitude or frequency data for the common range of frequencies on the combined first and second statistical distributions, and identifying an anomaly of the transformer based on a pattern of the overlayed data.
9. The method according to claim 8, wherein the anomaly comprises a deformation in the first or second windings.
10. The method according to claim 1, further comprising generating a three-dimensional chart with the first axis, second axis and third axis, and plotting the different amplitude or frequency data for the common range of frequencies on the three-dimensional chart.
11. The method according to claim 10, further comprising plotting a probabilistic surface on the three-dimensional chart representing the first and second statistical distributions.
12. The method according to claim 1, wherein the first statistical distribution is based on the amplitude of the second AC voltage and the second statistical distribution is based on the amplitude of the second AC voltage of the different frequency response tests, further comprising overlaying the different amplitude or frequency data for the common range of frequencies on the combined first and second statistical distributions, and identifying an anomaly of the transformer based on a pattern of the overlayed data, wherein the anomaly comprises a deformation in the first or second windings which occurs between the different frequency response tests.
13. The method according to claim 12, further comprising generating a three-dimensional chart with the first axis, second axis and third axis, and plotting the different amplitude or frequency data for the common range of frequencies on the three-dimensional chart.
14. The method according to claim 13, further comprising plotting a probabilistic surface on the three-dimensional chart representing the first and second statistical distributions.
15. The method according to claim 14, wherein the amplitude of the second AC voltage is expressed as a ratio of the first and second AC voltages.
16. The method according to claim 15, wherein the first statistical distribution is a Gaussian distribution defined by a mean and a standard deviation, and the second statistical distribution is a Gaussian distribution defined by a mean and a standard deviation.
17. The method according to claim 1, wherein the first statistical distribution is based on the frequency of the second AC voltage and the second statistical distribution is based on the amplitude of the second AC voltage of the same frequency response test, further comprising generating a three-dimensional chart with the first axis, second axis and third axis, plotting the different amplitude or frequency data for the common range of frequencies on the three-dimensional chart, overlaying the different amplitude or frequency data for the common range of frequencies on the combined first and second statistical distributions, and identifying an anomaly of the transformer based on a pattern of the overlayed data.
18. The method according to claim 17, further comprising plotting a probabilistic surface on the three-dimensional chart representing the first and second statistical distributions.
19. The method according to claim 18, wherein the first statistical distribution is a Gaussian distribution defined by a mean and a standard deviation, and the second statistical distribution is a Gaussian distribution defined by a mean and a standard deviation.
20. The method according to claim 19, wherein the amplitude of the second AC voltage is expressed as a ratio of the first and second AC voltages.
Description
BRIEF DESCRIPTION OF SEVERAL VIEWS OF THE DRAWINGS
[0005] The invention may be more fully understood by reading the following description in conjunction with the drawings, in which:
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DETAILED DESCRIPTION
[0041] A conventional transformer 10 is shown in
[0042] An output of a frequency response analysis is shown in
[0043] It may be desirable to evaluate the frequency response analysis chart in smaller sections of the frequency readings. Thus, the chart of
[0044] Unlike
[0045] Although it is possible that a variety of types of statistical distributions may be used and that different statistical distribution types may be used for separate axes, the embodiments herein use a Gaussian distribution defined by a mean and a standard deviation for both the frequency axis and the dB axis of the probabilistic surface. Thus, the resulting shape of the probabilistic surface is a bell curve along the frequency axis and a bell curve along the dB axis. This results in a three-dimensional bell shape although the bell-shape will not be circumferentially symmetric since the three-dimensional bell-shape is defined by two different bell curves.
[0046] A trace of the frequency and dB data of
[0047] A segment of the chart of
[0048] In
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[0050] An example of an anomaly that may happen to a winding of a transformer between two tests is shown in
[0051] Another example of before and after frequency response analysis data is shown in
[0052] The three-dimensional charts of
[0053] While the method described herein may be particularly useful in identifying anomalies with three-dimensional charts as illustrated, it is understood that other comparisons may also be done. For example, computer algorithms may use the combined first and second statistical distributions to analyze patterns of the amplitude and/or frequency data. As recognized, it is also possible to use the method herein to analyze data from a single frequency response test or to compare data from two different frequency response tests performed at different times.
[0054] While preferred embodiments of the inventions have been described, it should be understood that the inventions are not so limited, and modifications may be made without departing from the inventions herein. While each embodiment described herein may refer only to certain features and may not specifically refer to every feature described with respect to other embodiments, it should be recognized that the features described herein are interchangeable unless described otherwise, even where no reference is made to a specific feature. It should also be understood that the advantages described above are not necessarily the only advantages of the inventions, and it is not necessarily expected that all of the described advantages will be achieved with every embodiment of the inventions. The scope of the inventions is defined by the appended claims, and all devices and methods that come within the meaning of the claims, either literally or by equivalence, are intended to be embraced therein.